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Copula Based Cox Proportional Hazards Models for Dependent Censoring

Negera Wakgari Deresa, Ingrid Van Keilegom

2023Journal of the American Statistical Association15 citationsDOIOpen Access PDF

Abstract

Most existing copula models for dependent censoring in the literature assume that the parameter defining the copula is known. However, prior knowledge on this dependence parameter is often unavailable. In this article we propose a novel model under which the copula parameter does not need to be known. The model is based on a parametric copula model for the relation between the survival time (T) and the censoring time (C), whereas the marginal distributions of T and C follow a semiparametric Cox proportional hazards model and a parametric model, respectively. We show that this model is identified, and propose estimators of the nonparametric cumulative hazard and the finite-dimensional parameters. It is shown that the estimators of the model parameters and the cumulative hazard function are consistent and asymptotically normal. We also investigate the performance of the proposed method using finite-sample simulations. Finally, we apply our model and estimation procedure to a follicular cell lymphoma dataset. Supplementary materials for this article are available online.

Topics & Concepts

Copula (linguistics)Censoring (clinical trials)EstimatorProportional hazards modelParametric statisticsMathematicsNonparametric statisticsEconometricsStatisticsSemiparametric modelApplied mathematicsStatistical Methods and InferenceStatistical Distribution Estimation and ApplicationsHydrology and Drought Analysis
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